English

The driving scale -- density decorrelation scale relation in a turbulent medium

Astrophysics of Galaxies 2020-09-22 v2

Abstract

Density fluctuations produced by supersonic turbulence are of great importance to astrophysical chemical models. A property of these density fluctuations is that the two point correlation function decreases with increasing scale separation. The relation between the density decorrelation length scale (LdecL_{\rm dec}) and the turbulence driving scale (LdriveL_{\rm drive}) determines how turbulence affects the density and chemical structures in the interstellar medium (ISM), and is a key component for using observations of atomic and molecular tracers to constrain turbulence properties. We run a set of numerical simulations of supersonic magnetohydrodynamic turbulence, with different sonic Mach numbers (Ms=4.5,7\mathcal{M}_s=4.5, 7) , and driven on varying scales (1/2.5, 1/5, 1/7) the box length. We derive the LdecLdriveL_{\rm dec}-L_{\rm drive} relation as a function of Mach number, driving scale, and the orientation of the line-of-sight (LOS) in respect to the magnetic-field. We find that the mean ratio Ldec/Ldrive=0.19±0.10L_{\rm dec}/L_{\rm drive} = 0.19 \pm 0.10, when averaged over snapshots, Mach numbers, driving lengths, and the three LOSs. For LOS parallel to the magnetic field the density structures are statistically smaller and the LdecLdriveL_{\rm dec}-L_{\rm drive} relation is tighter, with Ldec/Ldrive=0.112±0.024L_{\rm dec}/L_{\rm drive} = 0.112 \pm 0.024. We discuss our results in the context of using observations of chemical tracers to constrain the dominant turbulence driving scale in the ISM.

Keywords

Cite

@article{arxiv.2001.06023,
  title  = {The driving scale -- density decorrelation scale relation in a turbulent medium},
  author = {Shmuel Bialy and Blakesley Burkhart},
  journal= {arXiv preprint arXiv:2001.06023},
  year   = {2020}
}

Comments

Accepted for publication in the ApJ. Letters

R2 v1 2026-06-23T13:13:23.716Z